In the pixel driving circuit of the disclosure, the control terminal of the driving unit is connected with a first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit and the control terminal of the third switching unit. The control terminal of the first switching unit is operable to input a reset signal. The second signal terminal of the first switching unit is connected with an initialization voltage. The control terminal of the second switching unit is operable to input a scan signal. The second signal terminal of the second switching unit is connected with the first signal terminal of the third switching unit. The second signal terminal of the third switching unit is operable to input a data signal. The control terminal of the fourth switching unit is operable to input a light emitting signal.
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1. A pixel driving circuit, comprising: a light emitting device; a storage capacitor; a driving unit; and first to fourth switching units,
each of the switching units comprising a control terminal, a first signal terminal and a second signal terminal, the control terminal of the switching unit being operable to bring the first and second signal terminals into or out of conduction; the driving unit comprising a control terminal, a signal input terminal and a drive terminal, the control terminal and the signal input terminal of the driving unit being operable to control a drive signal outputted at the drive terminal;
the control terminal of the driving unit being connected with a first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit and the control terminal of the third switching unit;
the control terminal of the first switching unit being operable to input a reset signal, the second signal terminal of the first switching unit being connected with an initialization voltage;
the control terminal of the second switching unit being operable to input a scan signal, the second signal terminal of the second switching unit being connected with the first signal terminal of the third switching unit;
the second signal terminal of the third switching unit being operable to input a data signal;
the control terminal of the fourth switching unit being operable to input a light emitting signal,
wherein a second terminal of the storage capacitor is connected with a first voltage, the signal input terminal and the drive terminal of the driving unit as well as the first signal terminal and the second signal terminal of the fourth switching unit are connected in series between the first voltage and a first terminal of the light emitting device, such that the driving unit and the fourth switching unit are connected in series between the first voltage and the first terminal of the light emitting device, and
wherein a second terminal of the light emitting device is connected with a second voltage.
13. A display apparatus comprising a pixel driving circuit, wherein the pixel driving circuit comprises: a light emitting device; a storage capacitor; a driving unit; and first to fourth switching units,
each of the switching units comprising a control terminal, a first signal terminal and a second signal terminal, the control terminal of the switching unit being operable to bring the first and second signal terminals into or out of conduction; the driving unit comprising a control terminal, a signal input terminal and a drive terminal, the control terminal and the signal input terminal of the driving unit being operable to control a drive signal outputted at the drive terminal;
the control terminal of the driving unit being connected with a first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit and the control terminal of the third switching unit;
the control terminal of the first switching unit being operable to input a reset signal, the second signal terminal of the first switching unit being connected with an initialization voltage;
the control terminal of the second switching unit being operable to input a scan signal, the second signal terminal of the second switching unit being connected with the first signal terminal of the third switching unit;
the second signal terminal of the third switching unit being operable to input a data signal;
the control terminal of the fourth switching unit being operable to input a light emitting signal,
wherein a second terminal of the storage capacitor is connected with a first voltage, the signal input terminal and the drive terminal of the driving unit as well as the first signal terminal and the second signal terminal of the fourth switching unit are connected in series between the first voltage and a first terminal of the light emitting device, such that the driving unit and the fourth switching unit are connected in series between the first voltage and the first terminal of the light emitting device, and
wherein a second terminal of the light emitting device is connected with a second voltage.
19. A driving method for a pixel driving circuit, wherein the pixel driving circuit comprises: a light emitting device; a storage capacitor; a driving unit; and first to fourth switching units,
each of the switching units comprising a control terminal, a first signal terminal and a second signal terminal, the control terminal of the switching unit being operable to bring the first and second signal terminals into or out of conduction; the driving unit comprising a control terminal, a signal input terminal and a drive terminal, the control terminal and the signal input terminal of the driving unit being operable to control a drive signal outputted at the drive terminal;
the control terminal of the driving unit being connected with a first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit and the control terminal of the third switching unit;
the control terminal of the first switching unit being operable to input a reset signal, the second signal terminal of the first switching unit being connected with an initialization voltage;
the control terminal of the second switching unit being operable to input a scan signal, the second signal terminal of the second switching unit being connected with the first signal terminal of the third switching unit;
the second signal terminal of the third switching unit being operable to input a data signal;
the control terminal of the fourth switching unit being operable to input a light emitting signal,
wherein a second terminal of the storage capacitor is connected with a first voltage, the signal input terminal and the drive terminal of the driving unit as well as the first signal terminal and the second signal terminal of the fourth switching unit are connected in series between the first voltage and a first terminal of the light emitting device, such that the driving unit and the fourth switching unit are connected in series between the first voltage and the first terminal of the light emitting device, and
wherein a second terminal of the light emitting device is connected with a second voltage,
the driving method comprising:
at a first phase, bringing into conduction the first and second signal terminals of the first switching unit, and charging the storage capacitor with the initialization voltage;
at a second phase, bringing into conduction the first and second signal terminals of the second switching unit, and charging the storage capacitor with the data signal via the second signal terminal and the control terminal of the third switching unit; and
at a third phase, bringing into conduction the first and second signal terminals of the fourth switching unit, and driving the light emitting device by the driving unit.
2. The pixel driving circuit of
the control terminal of each of the switching units and the control terminal of the driving unit are each a gate of the thin film transistor;
the first signal terminal and the second signal terminal of each of the switching units are a source and a drain of the thin film transistor, respectively; or the first signal terminal and the second signal terminal of each of the switching units are a drain and a source of the thin film transistor, respectively; and
the signal input terminal and the drive terminal of the driving unit are a source and a drain of the thin film transistor, respectively; or the signal input terminal and the drive terminal of the driving unit are a drain and a source of the thin film transistor, respectively.
3. The pixel driving circuit of
4. The pixel driving circuit of
5. The pixel driving circuit of
6. The pixel driving circuit of
7. A display substrate comprising the pixel driving circuit of
8. The display substrate of
the control terminal of each of the switching units and the control terminal of the driving unit are each a gate of the thin film transistor;
the first signal terminal and the second signal terminal of each of the switching units are a source and a drain of the thin film transistor, respectively; or the first signal terminal and the second signal terminal of each of the switching units are a drain and a source of the thin film transistor, respectively; and
the signal input terminal and the drive terminal of the driving unit are a source and a drain of the thin film transistor, respectively; or the signal input terminal and the drive terminal of the driving unit are a drain and a source of the thin film transistor, respectively.
9. The display substrate of
10. The display substrate of
11. The display substrate of
12. The display substrate of
14. The display apparatus of
the control terminal of each of the switching units and the control terminal of the driving unit are each a gate of the thin film transistor;
the first signal terminal and the second signal terminal of each of the switching units are a source and a drain of the thin film transistor, respectively; or the first signal terminal and the second signal terminal of each of the switching units are a drain and a source of the thin film transistor, respectively; and
the signal input terminal and the drive terminal of the driving unit are a source and a drain of the thin film transistor, respectively; or the signal input terminal and the drive terminal of the driving unit are a drain and a source of the thin film transistor, respectively.
15. The display apparatus of
16. The display apparatus of
17. The display apparatus of
18. The display apparatus of
20. The driving method of
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The present application is the U.S. national phase entry of the international application PCT/CN2017/076587, with an international filing date of Mar. 14, 2017, which claims the benefit of Chinese Patent Application No. 201610830211.7, filed on Sep. 19, 2016, the entire disclosures of which are incorporated herein by reference.
The present disclosure relates to the field of display technology, and more particularly to a pixel driving circuit, a driving method thereof, and a display apparatus.
Active matrix organic light-emitting diode (AMOLED) displays are among the hot spots in today's flat panel display research. The organic light-emitting diode (OLED) has advantages such as low energy consumption, low production cost, being self-luminous, a wide viewing angle and a fast response speed, as compared with the liquid crystal display (LCD). At present, OLED displays are starting to replace traditional LCD displays in the fields of mobile phone, personal digital assistant (PDA), digital camera and the like. Pixel driving circuit design is the core technology of an AMOLED display, and is of important research significance.
According to an aspect of the present disclosure, a pixel driving circuit is provided in an embodiment of the disclosure which includes a light emitting device, a storage capacitor, a driving unit and first to fourth switching units. Each of the switching units includes a control terminal, a first signal terminal and a second signal terminal, and the control terminal of the switching unit is operable to bring the first and second signal terminals into or out of conduction. The driving unit includes a control terminal, a signal input terminal and a drive terminal. The control terminal and the signal input terminal of the driving unit are operable to control a drive signal outputted at the drive terminal. The control terminal of the driving unit is connected with a first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit and the control terminal of the third switching unit. The control terminal of the first switching unit is operable to input a reset signal, and the second signal terminal of the first switching unit being connected with an initialization voltage. The control terminal of the second switching unit is operable to input a scan signal, and the second signal terminal of the second switching unit is connected with the first signal terminal of the third switching unit. The second signal terminal of the third switching unit being operable to input a data signal. The control terminal of the fourth switching unit is operable to input a light emitting signal. The signal input terminal of the driving unit is connected with a second terminal of the storage capacitor and a first voltage, the drive terminal of the driving unit is connected with the first signal terminal of the fourth switching unit, and the second signal terminal of the fourth switching unit is connected with the first terminal of the light emitting device. Alternatively, the first signal terminal of the fourth switching unit is connected with the second terminal of the storage capacitor and the first voltage, the second signal terminal of the fourth switching unit is connected with the signal input terminal of the driving unit, and the drive terminal of the driving unit is connected with the first terminal of the light emitting device. A second terminal of the light emitting device is connected with a second voltage.
In the pixel driving circuit provided in the embodiments of the present disclosure, the control terminal of the driving unit is connected to the first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit, and the control terminal of the third switching unit. The control terminal of the first switching unit is used for inputting a reset signal, and the second signal terminal of the first switching unit is connected with the initialization voltage. The control terminal of the second switching unit is used for inputting a scan signal, and the second signal terminal of the second switching unit is connected with the first signal terminal of the third switching unit. The second signal terminal of the third switching unit is used for inputting a data signal. The control terminal of the fourth switching unit is used for inputting a light emitting signal. With the pixel driving circuit provided in the embodiments of the present disclosure, a sum of the data signal voltage and the threshold voltage of the third switching unit can be written into the control terminal of the driving unit before the light emitting device emits light, thereby eliminating the effect of the change in the threshold voltage of the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure may implement a driving circuit by using one storage capacitor, one driving unit and four switching units, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Optionally, the driving unit and the first to fourth switching units are thin film transistors. The control terminal of each of the switching units and the control terminal of the driving unit are each a gate of the thin film transistor. The first signal terminal and the second signal terminal of each of the switching units are a source and a drain of the thin film transistor, respectively. Alternatively, the first signal terminal and the second signal terminal of each of the switching units are a drain and a source of the thin film transistor, respectively. The signal input terminal and the drive terminal of the driving unit are a source and a drain of the thin film transistor, respectively; or the signal input terminal and the drive terminal of the driving unit are a drain and a source of the thin film transistor, respectively.
With the pixel driving circuit provided in the embodiments of the present disclosure, a sum of the data signal voltage and the threshold voltage of the third switching unit can be written into the gate of the thin film transistor that serves as the driving unit, thereby eliminating the effect of the change in the threshold voltage of the thin film transistor that serves as the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure implement a driving circuit by using one storage capacitor and five thin film transistors, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Optionally, the driving unit and the first to fourth switching units are P-type thin film transistors. Alternatively, the driving unit and the first to fourth switching units are N-type thin film transistors.
The switch unit and the driving unit employed in embodiments of the present disclosure may be thin film transistors or field effect transistors or other devices having the same characteristics. Being symmetrical, the source and drain of the thin film transistor are interchangeable. In embodiments of the present disclosure, in order to distinguish between the two electrodes of the thin film transistor other than its gate, one of them is referred to as a source, and the other as a drain. According to the configurations in the figures, the middle terminal of the thin film transistor is the gate, the signal input terminal is the source, and the signal output terminal is the drain. The P-type thin film transistor is turned on when the gate is at a low voltage and is turned off when the gate is at a high voltage. The N-type thin film transistor is turned on when the gate is a high voltage and is turned off when the gate is at a low voltage. The P-type thin film transistor that serves as the driving unit is in an amplified state or a saturated state when the gate voltage is a low voltage (the gate voltage is smaller than the source voltage) and the absolute value of the voltage difference between the gate and the source is larger than the threshold voltage. The N-type thin film transistor that serves as the driving unit is in an amplified state or a saturated state when the gate voltage is a high voltage (the gate voltage is larger than the source voltage) and the absolute value of the voltage difference between the gate and the source is larger than the threshold voltage.
Optionally, the driving unit and the third switching unit are thin film transistors having the same specifications.
The threshold voltages of thin film transistors having the same specifications have the same tendency to vary. That is, the threshold voltage Vth3 of the thin film transistor that serves as the third switching unit is substantially equal to the threshold voltage Vthd of the thin film transistor that serves as the driving unit. Therefore, the thin film transistor serving as the third switching unit can write the sum of the data line voltage and its threshold voltage (Vdata+Vth3) to the first terminal of the storage capacitor, thereby eliminating the influence of the threshold voltage Vthd of the driving unit on the driving current.
Optionally, the light emitting device is an organic light emitting diode.
According to another aspect of the present disclosure, a display substrate is provided in an embodiment of the disclosure which includes the pixel driving circuit as described in the above embodiments.
According to yet another aspect of the present disclosure, a display apparatus is provided in an embodiment of the disclosure which includes the pixel driving circuit as described in the above embodiments.
According to still another aspect of the present disclosure, a driving method for the pixel driving circuit as described above is provided in an embodiment of the disclosure. The driving method includes: a first phase in which the first signal terminal and the second signal terminal of the first switching unit are brought into conduction, the storage capacitor is charged with the initialization voltage; a second phase in which the first signal terminal and the second signal terminal of the second switching unit are brought into conduction, and the storage capacitor is charged via the second signal terminal and the control terminal of the third switching unit with the data signal; and a third phase in which a first signal terminal and the second signal terminal of the fourth switching unit are brought into conduction, and the light emitting device is driven by the driving unit.
With the driving method of the pixel driving circuit provided in the embodiment of the present disclosure, a sum of the data signal voltage and the threshold voltage of the third switching unit can be written into the control terminal of the driving unit before the light emitting device emits light, thereby eliminating the effect of the change in the threshold voltage of the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure may implement a driving circuit by using one storage capacitor, one driving unit and four switching units, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Optionally, the driving unit is a thin film transistor, and the thin film transistor serving as the driving unit is in a saturated state in the third phase.
In the following, the technical solutions in embodiments of the disclosure will be described clearly and completely in connection with the drawings in the embodiments of the disclosure. Obviously, the described embodiments are only part of the embodiments of the disclosure, and not all of the embodiments. Based on the embodiments in the disclosure, all other embodiments obtained by those of ordinary skills in the art under the premise of not paying out creative work pertain to the protection scope of the disclosure.
Unlike thin film transistor liquid crystal displays (TFT-LCDs) which use a stable voltage for brightness control, the OLED display requires a steady current to control the light emission since the OLED is a current-driven type of device. In the existing driving circuit with two transistors 10, 20 and one storage capacitor C (referring to
Embodiments of the present disclosure provide a pixel driving circuit, a driving method thereof, and a display apparatus, which may avoid an influence of a threshold voltage drift of the driving unit on the driving current of the active light emitting device, thereby resulting in improvement of the uniformity of the display image.
As shown in
Alternatively, as shown in
In the pixel driving circuit provided in the embodiments of the present disclosure, the control terminal of the driving unit is connected to the first terminal of the storage capacitor, the first signal terminal of the first switching unit, the first signal terminal of the second switching unit, and the control terminal of the third switching unit. The control terminal of the first switching unit is used for inputting a reset signal, and the second signal terminal of the first switching unit is connected with the initialization voltage. The control terminal of the second switching unit is used for inputting a scan signal, and the second signal terminal of the second switching unit is connected with the first signal terminal of the third switching unit. The second signal terminal of the third switching unit is used for inputting a data signal. The control terminal of the fourth switching unit is used for inputting a light emitting signal. With the pixel driving circuit provided in the embodiments of the present disclosure, a sum of the data signal voltage and the threshold voltage of the third switching unit can be written into the control terminal of the driving unit before the light emitting device emits light, thereby eliminating the effect of the change in the threshold voltage of the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure may implement a driving circuit by using one storage capacitor, one driving unit and four switching units, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Optionally, as shown in
With the pixel driving circuit provided in the embodiments of the present disclosure, a sum of the data signal voltage Vdata and the threshold voltage Vth3 of the third switching unit T3 can be written into the gate of the thin film transistor that serves as the driving unit DTFT, thereby eliminating the effect of the change in the threshold voltage of the thin film transistor that serves as the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure implement a driving circuit by using one storage capacitor and five thin film transistors, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Optionally, both the driving unit and the four switching units are P-type thin film transistors. Alternatively, the driving unit and the four switching units are N-type thin film transistors.
The switch unit and the driving unit employed in embodiments of the present disclosure may be thin film transistors or field effect transistors or other devices having the same characteristics. Being symmetrical, the source and drain of the thin film transistor are interchangeable. In embodiments of the present disclosure, in order to distinguish between the two electrodes of the thin film transistor other than its gate, one of them is referred to as a source, and the other as a drain. According to the configurations in the figures, the middle terminal of the thin film transistor is the gate, the signal input terminal is the source, and the signal output terminal is the drain. The P-type thin film transistor is turned on when the gate is at a low voltage and is turned off when the gate is at a high voltage. The N-type thin film transistor is turned on when the gate is a high voltage and is turned off when the gate is at a low voltage. The P-type thin film transistor that serves as the driving unit is in an amplified state or a saturated state when the gate voltage is a low voltage (the gate voltage is smaller than the source voltage) and the absolute value of the voltage difference between the gate and the source is larger than the threshold voltage. The N-type thin film transistor that serves as the driving unit is in an amplified state or a saturated state when the gate voltage is a high voltage (the gate voltage is larger than the source voltage) and the absolute value of the voltage difference between the gate and the source is larger than the threshold voltage.
Optionally, the driving unit DTFT and the third switch unit T3 are thin film transistors having the same specifications.
The threshold voltages of thin film transistors having the same specifications have the same tendency to vary. That is, the threshold voltage Vth3 of the thin film transistor that serves as the third switching unit is substantially equal to the threshold voltage Vthd of the thin film transistor that serves as the driving unit. Therefore, the thin film transistor serving as the third switching unit can write the sum of the data line voltage and its threshold voltage (Vdata+Vth3) to the first terminal of the storage capacitor, thereby eliminating the influence of the threshold voltage Vthd of the driving unit on the driving current.
According to another aspect of the present disclosure, an embodiment of the present disclosure further provides a display substrate. As shown in
According to another aspect of the present disclosure, an embodiment of the present disclosure provides a driving method for the pixel driving circuit described above. As shown in
With the driving method of the pixel driving circuit provided in the embodiment of the present disclosure, a sum of the data signal voltage and the threshold voltage of the third switching unit can be written into the control terminal of the driving unit before the light emitting device emits light, thereby eliminating the effect of the change in the threshold voltage of the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure may implement a driving circuit by using one storage capacitor, one driving unit and four switching units, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Optionally, the driving unit is a thin film transistor, and the thin film transistor serving as the driving unit is in a saturated state in the third phase.
When the thin film transistor used as the driving unit is in a saturated state, its output current is:
IOLED=½β[VGS−Vthd]2=½β[VDD−Vdata+Vth3−Vthd]2=½β[VDD−Vdata]2
As can be seen from the above formula, the driving current IOLED is related only to the data signal voltage Vdata, so that the driving current is not affected by the threshold voltage Vthd of the thin film transistor serving as the driving unit. VGS is the voltage between the gate and the source of the thin film transistor, β=μCoxW/L, μ and Cox are process constants, W is the channel width of the thin film transistor, L is the channel length of the thin film transistor, and W, L are constants that are selectively designed. In this case, since the Vth3=Vthd, the current on the light emitting device OLED is independent of the threshold voltage Vthd of the thin film transistor serving as the driving unit.
Specifically, the operation principle of the pixel driving circuit provided in the embodiments of the disclosure will be described with reference to the circuit layout shown in
At the second phase t2, the scan signal “Gate” is a low voltage, the source and the drain of the second switching unit T2 are brought into conduction, and the third switching unit T3 exhibits a diode state at this time. The storage capacitor Cst is charged by the data signal via the source and the gate of the third switching unit T3. In this case, the potential of the gate of the driving unit DTFT is the sum of the data signal voltage Vdata and the threshold voltage Vth3 of the third switching unit T3.
At the third phase t3, the light emitting signal EM is a low voltage, the source and the drain of the fourth switching unit T4 are brought into conduction, and the light emitting device OLED is driven by the driving unit DTFT. Since the threshold voltage of the driving unit DTFT has been compensated on the gate of the driving unit DTFT in the second phase, the driving current IOLED of the OLED is related to the data signal voltage Vdata while being independent from the threshold value of the driving unit DTFT, according to the above formula
Similarly, the input signal timing of the pixel driving circuit shown in
With the pixel driving circuit provided in the embodiments of the present disclosure, the sum of the data signal voltage and the threshold voltage of the third switching unit can be written into the control terminal of the driving unit before the light emitting device emits light, thereby eliminating the effect of the change in the threshold voltage of the driving unit on the light emission. Moreover, a circuit configuration can be achieved with a relatively small storage capacitor. The embodiments of the present disclosure may implement a driving circuit by using one storage capacitor, one driving unit and four switching units, which may obtain a smaller pixel layout and contribute to improvement of the display resolution.
Apparently, the person skilled in the art may make various alterations and variations to the disclosure without departing the spirit and scope of the disclosure. As such, provided that these modifications and variations of the disclosure pertain to the scope of the claims of the disclosure and their equivalents, the disclosure is intended to embrace these alterations and variations.
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